Wnt3a protein reduces growth factor-driven expansion of human hematopoietic stem and progenitor cells in serum-free cultures

Publication date

2015-03-25

Authors

Duinhouwer, Lucia E.
Tüysüz, Nesrin
Rombouts, Elwin W J C
Ter Borg, Mariette N D
Mastrobattista, EnricoORCID 0000-0002-6745-2015ISNI 000000035187179X
Spanholtz, Jan
Cornelissen, Jan J.
Berge, Derk Ten
Braakman, Eric

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Document Type

Article
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Abstract

Ex vivo expansion of hematopoietic stem and progenitor cells (HSPC) is a promising approach to improve insufficient engraftment after umbilical cord blood stem cell transplantation (UCB-SCT). Although culturing HSPC with hematopoietic cytokines results in robust proliferation, it is accompanied with extensive differentiation and loss of self-renewal capacity. Wnt signaling has been implicated in regulating HSPC fate decisions in vivo and in promoting HSPC self-renewal by inhibition of differentiation, but the effects of Wnt on the ex vivo expansion of HSPC are controversial. Here, we demonstrate that exogenous Wnt3a protein suppresses rather than promotes the expansion of UCB-derived CD34+ cells in serum free expansion cultures. The reduced expansion was also observed in cultures initiated with Lin-CD34+CD38lowCD45RA-CD90+ cells which are highly enriched in HSC and was also observed in response to activation of beta-catenin signaling by GSK3 inhibition. The presence of Wnt3a protein during the culture reduced the frequency of multilineage CFU-GEMM and the long-term repopulation ability of the expanded HSPC. These data suggest that Wnt signaling reduces expansion of human HSPC in growth factor-driven expansion cultures by promoting differentiation of HSPC.

Keywords

General Agricultural and Biological Sciences, General Biochemistry,Genetics and Molecular Biology, General Medicine

Citation

Duinhouwer, L E, Tüysüz, N, Rombouts, E W J C, Ter Borg, M N D, Mastrobattista, E, Spanholtz, J, Cornelissen, J J, Berge, D T & Braakman, E 2015, 'Wnt3a protein reduces growth factor-driven expansion of human hematopoietic stem and progenitor cells in serum-free cultures', PLoS One, vol. 10, no. 3, e0119086. https://doi.org/10.1371/journal.pone.0119086